Chemistry: Principles and Practice
Chemistry: Principles and Practice
3rd Edition
ISBN: 9780534420123
Author: Daniel L. Reger, Scott R. Goode, David W. Ball, Edward Mercer
Publisher: Cengage Learning
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Chapter 6, Problem 6.94QE
Interpretation Introduction

Interpretation:

The mole fraction of CO2, N2, Ar and O2 when total atmospheric pressure is 7×102 Pa has to be calculated.

Concept Introduction:

The net pressure of a mixture of gases is equal to the sum of the partial pressures of its constituent gases. This is known as Dalton’s law of partial pressure.

The total pressure for a mixture of two gases A and B is calculated as follows:

  PT=PA+PB

In terms of mole fraction, the partial pressure is calculated as follows:

  PA=χAPT

Here,

PT denotes the total pressure exerted by the mixture of gases.

χA denotes the mole fraction of component gas A.

PA denotes the pressure exerted by the gaseous component A.

PB denotes the pressure exerted by the gaseous component B.

Expert Solution & Answer
Check Mark

Answer to Problem 6.94QE

The mole fraction of CO2, N2, Ar and O2 is 667.24 Pa, 18.9 Pa, 11.2 Pa and 0.91 Pa respectively.

Explanation of Solution

In terms of mole fraction, the partial pressure is calculated as follows:

  PCO2=χCO2PT        (1)

Here,

PT denotes the total pressure exerted by the mixture of gases.

χCO2 denotes the mole fraction of CO2.

PCO2 denotes the partial pressure exerted by CO2.

Substitute 0.9532 for χCO2 and 7×102 Pa for PT in equation (1).

  PCO2=(0.9532)(7×102 Pa)=667.24 Pa

The formula to calculate partial pressure of N2 is as follows:

  PN2=χN2PT        (2)

Here,

PT denotes the total pressure exerted by the mixture of gases.

χN2 denotes the mole fraction of N2.

PN2 denotes the partial pressure exerted by N2.

Substitute 0.027 for χN2 and 7×102 Pa for PT in equation (2).

  PN2=(0.027)(7×102 Pa)=0.189×102 Pa=18.9 Pa

The formula to calculate partial pressure of Ar is as follows:

  PAr=χArPT        (3)

Here,

PT denotes the total pressure exerted by the mixture of gases.

χAr denotes the mole fraction of Ar.

PAr denotes the partial pressure exerted by Ar.

Substitute 0.016 for χAr and 7×102 Pa for PT in equation (3).

  PAr=(0.016)(7×102 Pa)=0.112×102 Pa=11.2 Pa

The formula to calculate the partial pressure of O2 is as follows:

  PO2=χO2PT        (4)

Here,

PT denotes the total pressure exerted by the mixture of gases.

χO2 denotes the mole fraction of O2.

PO2 denotes the partial pressure exerted by O2.

Substitute 0.0013 for χO2 and 7×102 Pa for PT in equation (4).

  PO2=(0.0013)(7×102 Pa)=0.91 Pa

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Chapter 6 Solutions

Chemistry: Principles and Practice

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